Patentable/Patents/US-20260184018-A1
US-20260184018-A1

Filament Spool Holder for 3d Printer, 3d Printer, and 3d Printing System

PublishedJuly 2, 2026
Assigneenot available in USPTO data we have
Technical Abstract

The present application provides a filament spool holder for a 3D printer, a 3D printer, and a 3D printing system. The filament spool holder comprises: a filament spool holder body; at least two filament cylinder rotating shafts, connected to the filament spool holder body, wherein each of the filament cylinder rotating shafts is configured to hold one 3D printing filament spool; and a drive assembly, wherein the drive assembly is configured to drive a first filament cylinder rotating shaft of the at least two filament cylinder rotating shafts to rotate, thereby enabling the first filament cylinder rotating shaft to drive the 3D printing filament spool held on the first filament cylinder rotating shaft to rotate.

Patent Claims

Legal claims defining the scope of protection, as filed with the USPTO.

1

a filament spool holder body; at least two filament cylinder rotating shafts, connected to the filament spool holder body, wherein each of the filament cylinder rotating shafts is configured to hold one 3D printing filament spool; and a drive assembly, wherein the drive assembly is configured to drive a first filament cylinder rotating shaft of the at least two filament cylinder rotating shafts to rotate, thereby enabling the first filament cylinder rotating shaft to drive the 3D printing filament spool held on the first filament cylinder rotating shaft to rotate. . A filament spool holder for a 3D printer, comprising:

2

claim 1 . The filament spool holder according to, wherein the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a first direction to retract a filament to the 3D printing filament spool on the first filament cylinder rotating shaft.

3

claim 2 . The filament spool holder according to, wherein when the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in the first direction, the motor is in transmission connection to the first filament cylinder rotating shaft, and when the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a second direction, the motor is in transmission disconnection from the first filament cylinder rotating shaft, wherein the first direction is opposite to the second direction.

4

claim 3 wherein the drive assembly comprises a motor and a ratchet structure that is in transmission connection to the motor; wherein the motor drives the first filament cylinder rotating shaft to rotate in the first direction in a first rotation mode, the ratchet structure meshes with a first gear, and the first gear is in transmission connection to the first filament cylinder rotating shaft, thereby causing the first filament cylinder rotating shaft to rotate in the first direction; and wherein the motor drives the first filament cylinder rotating shaft to rotate in a second direction in the second rotation mode, the ratchet structure stops rotating, thereby causing the first filament cylinder rotating shaft to lose its driving force. . The filament spool holder according to,

5

claim 2 . The filament spool holder according to, wherein the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a second direction to convey the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer, and the first direction is opposite to the second direction.

6

claim 1 . The filament spool holder according to, wherein the drive assembly comprises a motor and a clutch assembly, the motor is configured to drive the first filament cylinder rotating shaft to rotate, and the clutch assembly is configured for transmission connection or transmission disconnection between the motor and the first filament cylinder rotating shaft.

7

claim 6 . The filament spool holder according to, wherein the transmission connection comprises the motor driving the first filament cylinder rotating shaft to rotate, or driving the first filament cylinder rotating shaft to rotate in the opposite direction.

8

claim 6 . The filament spool holder according to, wherein the clutch assembly comprises a connector, a first connecting gear, and a second connecting gear; the connector and the first connecting gear are mounted on an output shaft of the motor or a transmission shaft that is in transmission connection to the motor, and the second connecting gear is rotatably connected to the connector and meshes with the first connecting gear, wherein the connector abuts against the first connecting gear, thereby enabling the connector and the second connecting gear to rotate in a circumferential direction of the transmission shaft or the output shaft as the first connecting gear rotates.

9

claim 8 . The filament spool holder according to, wherein the motor rotates in a third direction to drive the second connecting gear to rotate from a first position to a second position; the motor rotates in a fourth direction to drive the second connecting gear to rotate from the second position to the first position, wherein the third direction is opposite to the fourth direction, and the second position is located between the first position and the third position.

10

claim 9 . The filament spool holder according to, wherein the motor rotates in a third direction to drive the second connecting gear to rotate from a second position to a third position; the motor rotates in a fourth direction to drive the second connecting gear to rotate from the third position to the second position.

11

claim 9 . The filament spool holder according to, wherein when the second connecting gear is located at the first position, the second connecting gear meshes with one side of a first gear, the first gear is in transmission connection to the first filament cylinder rotating shaft, and the motor rotates in the fourth direction to drive the first filament cylinder rotating shaft to rotate in the second direction, thereby conveying the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer.

12

claim 9 . The filament spool holder according to, wherein when the second connecting gear is located at the second position, the transmission between the second connecting gear and the first gear is cut off, and the motor is in transmission disconnection from the first filament cylinder rotating shaft.

13

claim 10 . The filament spool holder according to, wherein when the second connecting gear is located at the third position, the second connecting gear meshes with the other side of the first gear, and the motor rotates in the third direction to drive the first filament cylinder rotating shaft to rotate in the first direction, thereby retracting the filament to the 3D printing filament spool on the first filament cylinder rotating shaft.

14

claim 1 . The filament spool holder according to, further comprising at least two filament guide apparatuses fixed to the filament spool holder body, wherein each of the filament guide apparatuses comprises an extrusion mechanism, and is configured to convey a filament in a 3D printing filament spool on a corresponding filament cylinder rotating shaft to the 3D printer, or to retract the filament to the 3D printing filament spool on the corresponding filament cylinder rotating shaft.

15

claim 14 . The filament spool holder according to, wherein the extrusion mechanism of the filament guide apparatus comprises a drive mechanism, an active extrusion wheel, and a driven extrusion wheel; wherein the active extrusion wheel and the driven extrusion wheel are configured to clamp the filament, and the drive mechanism is configured to drive the active extrusion wheel to rotate in the first direction, thereby retracting the filament to the 3D printing filament spool on the filament cylinder rotating shaft.

16

claim 1 . The filament spool holder according to, wherein an outer wall of the first filament cylinder rotating shaft abuts against an inner wall of a through hole on the 3D printing filament spool in a circumferential direction, and the first filament cylinder rotating shaft is able to drive the 3D printing filament spool to rotate through a frictional force.

17

claim 1 . The filament spool holder according to, wherein the filament cylinder rotating shaft is rotatably connected to the filament spool holder body.

18

claim 17 . The filament spool holder according to, wherein the filament cylinder rotating shaft comprises a sleeve and a fixed tube; wherein the fixed tube is fixedly connected to the filament spool holder body, the sleeve is sleeved over the fixed tube and rotatably connected to the fixed tube, and the sleeve is configured to suspend or support the 3D printing filament spool.

19

claim 1 . A 3D printer, comprising a printing head, a build plate, a heatbed, a base, and the filament spool holder according to, wherein the printing head comprises a filament guide unit, a nozzle, and an extrusion structure arranged between the filament guide unit and the nozzle, and wherein the filament spool holder body of the filament spool holder is fixedly connected to a frame of the 3D printer.

20

claim 1 . A 3D printing system, comprising a 3D printer and the filament spool holder according to.

Detailed Description

Complete technical specification and implementation details from the patent document.

The present application is a continuation of International Application No. PCT/CN2024/095371, filed May 25, 2024, which claims priority to Chinese Patent Application No. 202322307959.7, filed with the China National Intellectual Property Administration on Aug. 25, 2023 and entitled “FILAMENT SPOOL HOLDER FOR 3D PRINTER, 3D PRINTER, AND 3D PRINTING SYSTEM”, to International Patent Application PCT/CN2023/137255, filed with the China National Intellectual Property Administration on Dec. 7, 2023 and entitled “FILAMENT SPOOL HOLDER FOR 3D PRINTER, 3D PRINTER, AND 3D PRINTING SYSTEM”, and to International Patent Application No. PCT/CN2023/137710, filed with the China National Intellectual Property Administration on Dec. 9, 2023 and entitled “FILAMENT SPOOL HOLDER FOR 3D PRINTER, 3D PRINTER, AND 3D PRINTING SYSTEM”, the contents of which are incorporated herein by reference in their entirety.

The present application relates to the technical field of 3D printing, and in particular to a filament spool holder for a 3D printer, a 3D printer, and a 3D printing system.

A 3D printer, also known as a three-dimensional printer or an additive manufacturing device, is a process equipment for rapid prototyping which is typically achieved by using printing materials with digital technology. The 3D printer uses filaments such as polylactic acid (PLA) and acrylonitrile butadiene styrene (ABS) plastic as raw materials for printing, and the filaments are typically wound around a filament spool to form a coil for user convenience.

To facilitate user operation, the 3D printer is generally provided with a filament spool holder, and the filament spool holder can be used to support and hold the filament spool. A filament on the filament spool may be inserted into an extrusion structure of a printing head. When the 3D printer is running, the extrusion structure can extrude the filament to a nozzle of the printing head for use. Under the action of the extrusion structure, the filament at the printing head draws the filament in the filament spool to continuously move toward the nozzle. In scenarios in which a plurality of filament spools are required, such as a multi-color printing scenario, the filament spool holder may be heavy and difficult to fix to the 3D printer.

The present application provides a filament spool holder for a 3D printer, a 3D printer, and a 3D printing system.

a filament spool holder body; at least two filament cylinder rotating shafts connected to the filament spool holder body, where each of the filament cylinder rotating shafts is configured to hold one 3D printing filament spool; and a drive assembly, wherein the drive assembly is configured to drive a first filament cylinder rotating shaft of the at least two filament cylinder rotating shafts to rotate, thereby enabling the first filament cylinder rotating shaft to drive the 3D printing filament spool held on the first filament cylinder rotating shaft to rotate. In a first aspect, embodiments of the present application provide a filament spool holder for a 3D printer. The filament spool holder comprises:

With reference to the first aspect, in a first possible implementation, the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a first direction to retract a filament to the 3D printing filament spool on the first filament cylinder rotating shaft. With reference to the first aspect or any of the foregoing possible implementations, in a second possible implementation, when the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in the first direction, the motor is in transmission connection to the first filament cylinder rotating shaft, and when the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a second direction, the motor is in transmission disconnection from the first filament cylinder rotating shaft, wherein the first direction is opposite to the second direction.

With reference to the first aspect or any of the foregoing possible implementations, in a third possible implementation, the drive assembly comprises a motor and a ratchet structure that is in transmission connection to the motor. The motor drives the first filament cylinder rotating shaft to rotate in the first direction in a first rotation mode, wherein the ratchet structure meshes with a first gear, and the first gear is in transmission connection to the first filament cylinder rotating shaft, thereby causing the first filament cylinder rotating shaft to rotate in the first direction. The motor drives the first filament cylinder rotating shaft to rotate in a second direction in the second rotation mode, wherein the ratchet structure stops rotating, thereby causing the first filament cylinder rotating shaft to lose its driving force.

With reference to the first aspect or any of the foregoing possible implementations, in a fourth possible implementation, the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a second direction to convey the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer, and the first direction is opposite to the second direction.

With reference to the first aspect or any of the foregoing possible implementations, in a fifth possible implementation, the drive assembly comprises a motor and a clutch assembly, the motor is configured to drive the first filament cylinder rotating shaft to rotate, and the clutch assembly is configured for transmission connection or transmission disconnection between the motor and the first filament cylinder rotating shaft.

With reference to the first aspect or any of the foregoing possible implementations, in a sixth possible implementation, the transmission connection comprises the motor driving the first filament cylinder rotating shaft to rotate, or driving the first filament cylinder rotating shaft to rotate in the opposite direction.

With reference to the first aspect or any of the foregoing possible implementations, in a seventh possible implementation, the clutch assembly comprises a connector, a first connecting gear, and a second connecting gear; the connector and the first connecting gear are mounted on an output shaft of the motor or a transmission shaft that is in transmission connection to the motor, and the second connecting gear is rotatably connected to the connector and meshes with the first connecting gear, wherein the connector abuts against the first connecting gear, thereby enabling the connector and the second connecting gear to rotate in a circumferential direction of the transmission shaft or the output shaft as the first connecting gear rotates.

With reference to the first aspect or any of the foregoing possible implementations, in an eighth possible implementation, the motor rotates in a third direction to drive the second connecting gear to rotate from a first position to a second position; the motor rotates in a fourth direction to drive the second connecting gear to rotate from the second position to the first position, wherein the third direction is opposite to the fourth direction, and the second position is located between the first position and the third position.

With reference to the first aspect or any of the foregoing possible implementations, in a ninth possible implementation, the motor rotates in a third direction to drive the second connecting gear to rotate from a second position to a third position; the motor rotates in a fourth direction to drive the second connecting gear to rotate from the third position to the second position.

With reference to the first aspect or any of the foregoing possible implementations, in a tenth possible implementation, when the second connecting gear is located at the first position, the second connecting gear meshes with one side of a first gear, the first gear is in transmission connection to the first filament cylinder rotating shaft, and the motor rotates in the fourth direction to drive the first filament cylinder rotating shaft to rotate in the second direction, thereby conveying the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer.

With reference to the first aspect or any of the foregoing possible implementations, in an eleventh possible implementation, when the second connecting gear is located at the second position, the transmission between the second connecting gear and the first gear is cut off, and the motor is in transmission disconnection from the first filament cylinder rotating shaft.

With reference to the first aspect or any of the foregoing possible implementations, in a twelfth possible implementation, when the second connecting gear is located at the third position, the second connecting gear meshes with the other side of the first gear, and the motor rotates in the third direction to drive the first filament cylinder rotating shaft to rotate in the first direction, thereby retracting the filament to the 3D printing filament spool on the first filament cylinder rotating shaft.

With reference to the first aspect or any of the foregoing possible implementations, in a thirteenth possible implementation, the filament spool holder further comprises at least two filament guide apparatuses fixed to the filament spool holder body, wherein each of the filament guide apparatuses comprises an extrusion mechanism, and is configured to convey a filament in a 3D printing filament spool on a corresponding filament cylinder rotating shaft to the 3D printer, or to retract the filament to the 3D printing filament spool on the corresponding filament cylinder rotating shaft.

With reference to the first aspect or any of the foregoing possible implementations, in a fourteenth possible implementation, the extrusion mechanism of the filament guide apparatus comprises a drive mechanism, an active extrusion wheel, and a driven extrusion wheel. The active extrusion wheel and the driven extrusion wheel are configured to clamp the filament, and the drive mechanism is configured to drive the active extrusion wheel to rotate in the first direction, thereby retracting the filament to the 3D printing filament spool on the filament cylinder rotating shaft.

With reference to the first aspect or any of the foregoing possible implementations, in a fifteenth possible implementation, an outer wall of the first filament cylinder rotating shaft abuts against an inner wall of a through hole on the 3D printing filament spool in a circumferential direction, and the first filament cylinder rotating shaft is able to drive the 3D printing filament spool to rotate through a frictional force.

With reference to the first aspect or any of the foregoing possible implementations, in a sixteenth possible implementation, the filament cylinder rotating shaft is rotatably connected to the filament spool holder body.

With reference to the first aspect or any of the foregoing possible implementations, in a seventeenth possible implementation, the filament cylinder rotating shaft comprises a sleeve and a fixed tube. The fixed tube is fixedly connected to the filament spool holder body. The sleeve is sleeved over the fixed tube and rotatably connected to the fixed tube, and the sleeve is configured to suspend or support the 3D printing filament spool.

In a second aspect, the embodiments of the present application further provide a 3D printer. The 3D printer comprises a printing head, a build plate, a heatbed, a base, and the filament spool holder described with reference to the first aspect or any of the foregoing possible implementations in the first aspect. The printing head comprises a filament guide unit, a nozzle, and an extrusion structure arranged between the filament guide unit and the nozzle. The filament spool holder body of the filament spool holder is fixedly connected to a frame of the 3D printer..

In a third aspect, the embodiments of the present application further provide a 3D printing system. The 3D printing system comprises a 3D printer and the filament spool holder described with reference to the first aspect or any of the foregoing possible implementations in the first aspect.

It should be understood that for implementation and beneficial effects of the foregoing aspects of the present application, reference may be made to each other.

Embodiments of the present application are further described in detail below with reference to the accompanying drawings.

1 FIG. 1 FIG. 1 FIG. 10 101 102 101 Referring to,is a schematic diagram of a scenario of a 3D printing system according to an embodiment of the present application. As shown in, a 3D printing systemcomprises a filament spool holderand a 3D printerconnected to the filament spool holder.

101 1011 1012 1013 1012 101 1012 103 104 103 104 1011 104 103 1011 1011 The filament spool holdercomprises feeding/retracting apparatuses, filament cylinder rotating shafts, and a filament spool holder body. The filament cylinder rotating shaftmay comprise a sleeve and a fixed tube. The sleeve is detachably connected to the fixed tube of the filament spool holder, and the filament cylinder rotating shaftis configured to hang or support a filament spool. A filamentis wound around the filament spool, and the filamentmay be provided to the 3D printer through the feeding/retracting apparatus, or the filamentmay be retracted to the filament spoolthrough the feeding/retracting apparatus. That is, the feeding/retracting apparatuscan be configured to feed or retract filaments.

102 1021 1021 10211 10212 10211 10212 101 104 10211 104 10212 101 102 104 1021 104 101 1011 101 104 103 The 3D printercomprises a printing head. The printing headcomprises a filament guide unit, a nozzle, and an extrusion structure arranged between the filament guide unitand the nozzle. The extrusion structure is also a feeding/retracting apparatus. During the feeding process of the filament spool holder, the filamententers the extrusion structure after passing through the filament guide unit, and the extrusion structure provides the filamentto the nozzle. During the retracting process of the filament spool holder, the 3D printercuts off the filamentin the printing head, the extrusion structure conveys the filamentto the filament spool holder, and the feeding/retracting apparatusin the filament spool holderretracts the filamentto the filament spool.

102 104 10212 104 In one embodiment, the 3D printermay, for example, cut off the filamentbetween the extrusion structure and the nozzleor cut off the filamentwithin the extrusion structure. The position at which the 3D printer cuts off a printing material is not limited in the present application.

102 1023 1024 1025 1024 1025 10212 1024 1023 1024 10212 1024 1023 10212 1023 Illustratively, the 3D printerfurther comprises a build plate, a heatbed, and a base. The heatbedis arranged on a side of the basefacing the nozzle, and the heatbedhas a heating function. The build plateis arranged on a side of the heatbedfacing the nozzle, the heat of the heatbedcan be conducted to the build plate, and the nozzlecan extrude a printing material in a molten state onto the build plate.

10212 1024 104 10212 104 1024 104 10212 1023 1021 1026 1021 1026 102 1026 1024 1027 102 1027 102 1027 1027 1026 1026 1028 102 1028 1026 1027 1026 In a specific implementation, the 3D printer adjusts the temperatures of the nozzleand the heatbedbased on the material information of the filament. The 3D printer adjusts the temperature of the nozzleto heat the filamentto a molten state, and adjusts the temperature of the heatbedto adhere the filamentextruded from the nozzleto the build plate. The printing headis slidably connected to a first guide rail, and the printing headcan move in the length direction of the first guide rail, that is, implementing a printing path of the 3D printerin the length direction of the first guide rail. Moreover, the heatbedis slidably connected to a second guide rail, and the 3D printermoves in the length direction of the second guide rail, that is, implementing a printing path of the 3D printerin the length direction of the second guide rail. The length direction of the second guide railis perpendicular to the length direction of the first guide rail. Furthermore, the first guide railis slidably connected to a third guide rail, and the 3D printercan move in the length direction of the third guide railvia the first guide rail, thereby implementing a printing path in a direction perpendicular to the length of the second guide railand perpendicular to the length of the first guide rail.

102 That is, the 3D printercan implement three printing paths in directions perpendicular to each other, thereby printing a three-dimensional object.

In the embodiments of the present application, the structure of the filament spool holder can assist the filament feeding and retracting, and allows a plurality of 3D printing filament spools to be held on the filament spool holder.

2 FIG. 7 FIG. b. The structure of the filament spool holder will be described in detail below with reference toto

2 FIG. 2 FIG. 1 a filament spool holder body; 2 1 2 at least two filament cylinder rotating shaftsconnected to the filament spool holder body, where each of the filament cylinder rotating shaftsis configured to hold one 3D printing filament spool; and 3 1 3 2 2 at least two feeding/retracting apparatusesfixed to the filament spool holder body, where each of the feeding/retracting apparatusescomprises an extrusion mechanism, and is configured to convey a filament in a 3D printing filament spool on a corresponding filament cylinder rotating shaftto the 3D printer, or to retract the filament to the 3D printing filament spool on the corresponding filament cylinder rotating shaft. Referring to,is a schematic structural diagram of a filament spool holder according to an embodiment of the present application. The filament spool holder may comprise:

2 1 During a specific implementation, the filament cylinder rotating shaftmay be rotatably or fixedly connected to the filament spool holder body.

2 Specifically, the filament cylinder rotating shaftmay comprise a sleeve and a fixed tube. The sleeve is mounted outside the fixed tube and configured to hang or support the 3D printing filament spool.

2 2 1 2 1 2 1 Specifically, the filament cylinder rotating shaftmay alternatively comprise a sleeve, but not comprise a fixed tube. The connection between the filament cylinder rotating shaftand the filament spool holder bodymay be understood as a direct connection between the filament cylinder rotating shaftand the filament spool holder body, or an indirect connection between the filament cylinder rotating shaftand the filament spool holder bodyvia a fixed tube.

2 1 1 1 1 1 The filament cylinder rotating shaftbeing able to rotate relative to the filament spool holder bodymay be understood as: The sleeve is rotatably connected to the fixed tube, and the fixed tube is fixed to the filament spool holder body; or the sleeve is fixedly connected to the fixed tube, and the fixed tube is rotatably connected to the filament spool holder body; or the sleeve is rotatably connected to the fixed tube, and the fixed tube is rotatably connected to the filament spool holder body; or the sleeve is fixedly connected to the fixed tube, and the fixed tube is fixed to the filament spool holder body.

The connection comprises a detachable connection and a non-detachable connection. For example, the fixed connection may comprise a detachable fixed connection and a non-detachable fixed connection, the rotatable connection may comprise a detachable rotatable connection and a non-detachable rotatable connection, and the slidable connection may comprise a detachable slidable connection and a non-detachable slidable connection. The connection may also be a direct connection or an indirect connection via a component. For example, in the case of a detachable fixed connection, it means that in the mounted state, the positional relationship between at least two connected objects can be fixed; similarly, there are rotatable connections, slidable connections, etc.

To ensure that the filament in the 3D printing filament spool can be stably moved from the 3D printing filament spool to the printing head of the 3D printer, or stably retracted to the 3D printing filament spool, the embodiments of the present application provide a filament spool holder comprising a feeding/retracting apparatus. The feeding/retracting apparatus is arranged on the filament spool holder to assist the filament feeding and retracting of the feeding/retracting apparatus of the 3D printer, which can effectively avoid the problem that the printing head has no filament to use due to an insufficient extrusion force of the extrusion structure, or the problem that the filament cannot be properly retracted to the 3D printing filament spool, thereby improving the efficiency and stability of filament feeding and retracting of the 3D printer.

1 1 2 3 1 In the embodiments of the present application, the filament spool holder may comprise a filament spool holder body. The filament spool holder bodycan be configured to hold the filament cylinder rotating shaftand the feeding/retracting apparatus. The shape of the filament spool holder may be designed based on an actual situation. For example, the filament spool holder may be designed as a rectangular prism, a cube, an ellipsoid, etc., and the filament spool holder bodymay be in a flat shape or the like. This is not limited in the embodiments of the present application.

2 2 2 1 2 1 2 1 2 1 The filament spool holder may further comprise filament cylinder rotating shaftsconfigured to hold the 3D printing filament spools, and each of the filament cylinder rotating shaftscan be configured to hold one 3D printing filament spool. The filament cylinder rotating shaftmay be connected to the filament spool holder body. Specifically, the axis of the filament cylinder rotating shaftis perpendicular to the surface of the filament spool holder body, on which the junction of the filament cylinder rotating shaftand the filament spool holder bodyis located. The filament cylinder rotating shaftcan rotate relative to the filament spool holder body, so as to rotate with the 3D printing filament spool when the 3D printing filament spool rotates, thereby reducing the frictional force and resistance applied to the 3D printing filament spool.

2 2 2 In a possible implementation, when a user uses the 3D printer to print an object, different colors and different material types of filaments may be needed, and the filaments of different colors and different material types correspond to different 3D printing filament spools. To improve the efficiency of 3D printing, the filament cylinder rotating shaft may comprise at least two filament cylinder rotating shafts, and filaments of different colors and material types may be held and stored on different filament cylinder rotating shafts. In this way, the filament spool holder with the at least two filament cylinder rotating shaftscan hold at least two 3D printing filament spools, and the filaments stored in the at least two 3D printing filament spools may be of different colors and/or different material types. This is not limited in the embodiments of the present application.

The filament spool holder may also comprise at least two feeding/retracting apparatuses.

Specifically, the at least two filament cylinder rotating shafts are in one-to-one correspondence with the at least two feeding/retracting apparatuses. That is, each feeding/retracting apparatus corresponds to one filament cylinder rotating shaft, and each feeding/retracting apparatus is threaded by a filament in a 3D printing filament spool held on a filament cylinder rotating shaft corresponding to the feeding/retracting apparatus.

The extrusion mechanism may be provided with a motor, a gear set, etc. The motor drives the gear set to rotate, and a filament between the gear set moves, under the rotation of the gear set, toward the printing head or the 3D printing filament spool, so as to complete the filament feeding or retracting. Compared with completing the filament feeding and retracting only by the extrusion structure in the printing head, in the embodiments of the present application, the feeding/retracting apparatus arranged on the filament spool holder is further used, such that the filament feeding and retracting can be more stable.

In an embodiment of the present application, although the at least two filament cylinder rotating shafts can allow the 3D printer to achieve 3D printing of different colors and different material types of filaments, the space occupied by the filament spool holder is increased. To reduce the space occupied by the at least two filament cylinder rotating shafts and the at least two feeding/retracting apparatuses, in an example, the at least two filament cylinder rotating shafts and the at least two feeding/retracting apparatuses may be arranged with reference to the following positions.

The at least two filament cylinder rotating shafts comprise filament cylinder rotating shafts distributed on two sides of the filament spool holder body, and the at least two feeding/retracting apparatuses comprise feeding/retracting apparatuses distributed on the two sides of the filament spool holder body, where each of the feeding/retracting apparatuses corresponds to the filament cylinder rotating shaft located on the same side.

Specifically, the at least two filament cylinder rotating shafts may be arranged on the two sides of the filament spool holder body separately, so as to make full use of the space on different side surfaces of the filament spool holder body. For any one of the filament cylinder rotating shafts, the axis thereof may be perpendicular to the side surface of the filament spool holder body to which the filament cylinder rotating shaft is connected.

In addition, for the at least two feeding/retracting apparatuses, they may also be distributed like the filament cylinder rotating shafts. That is, the at least two feeding/retracting apparatuses may also be arranged on the two sides of the filament spool holder body separately.

For any one of the feeding/retracting apparatuses, it may correspond to the filament cylinder rotating shaft located on the same side of the filament spool holder body. That is, the feeding/retracting apparatus may be embedded with a filament in the 3D printing filament spool held on the filament cylinder rotating shaft located on the same side of the filament spool holder body.

In an embodiment of the present application, the at least two filament cylinder rotating shafts and the at least two feeding/retracting apparatuses may be specifically arranged with reference to the following positions.

The at least two filament cylinder rotating shafts comprise two filament cylinder rotating shafts located on one side of the filament spool holder body, the at least two feeding/retracting apparatuses comprise two feeding/retracting apparatuses located on the same side as the two filament cylinder rotating shafts, and the two feeding/retracting apparatuses are located between the two filament cylinder rotating shafts.

3 FIG. 4 4 5 4 5 6 4 5 6 4 6 5 6 As shown in, at least two filament cylinder rotating shaftsmay comprise two filament cylinder rotating shaftslocated on the same side of a filament spool holder body, and the two filament cylinder rotating shaftsmay be arranged on the same side of the filament spool holder bodyand spaced apart from each other. Correspondingly, two feeding/retracting apparatusescorresponding to the two filament cylinder rotating shaftsmay also be arranged on this side of the filament spool holder body, so as to reduce the distances between the 3D printing filament spool and the feeding/retracting apparatuses, and thereby reduce the travelling distances of filaments. In addition, arranging the filament cylinder rotating shaftsand the feeding/retracting apparatuseson the same side of the filament spool holder bodycan reduce the filament bending between the 3D printing filament spool and the feeding/retracting apparatuses. This not only simplifies the filament spool holder but also reduces the frictional force during filament feeding and retracting, thereby improving the stability of filament feeding and retracting.

6 4 6 4 In one embodiment, the two feeding/retracting apparatuseson the same side may be located between the two filament cylinder rotating shaftson this side. In one aspect, the whole filament spool holder can be more simplified, such that the filaments can be conveyed to the 3D printer from positions close to each other, thereby avoiding the waste of space caused by the conveyance of a plurality of filaments to the printer from different positions. In another aspect, the feeding/retracting apparatusescan also be prevented from being excessively far away from the corresponding filament cylinder rotating shafts, thereby avoiding excessively long traveling distances of the filaments.

5 As an example, the two feeding/retracting apparatuses are located in the center of the filament spool holder body.

4 5 As an example, the two filament cylinder rotating shaftson the same side are located at two ends of the filament spool holder body.

As an example, the two filament cylinder rotating shafts located on the same side of the filament spool holder body may be arranged with reference to the following positions.

In the two filament cylinder rotating shafts on the one side of the filament spool holder body, the axis of one filament cylinder rotating shaft is higher than the axis of the other filament cylinder rotating shaft.

4 FIG. 8 7 8 8 8 As shown in, in two filament cylinder rotating shaftson the same side of a filament spool holder body, the axis of one of the filament cylinder rotating shaftsmay be arranged to be higher than the axis of the other filament cylinder rotating shaft. Compared with a parallel arrangement, the vertically staggered arrangement with one higher than the other can reduce the space occupied by the two filament cylinder rotating shaftsin the horizontal direction.

a support stand fixedly connected to the bottom of the filament spool holder body, where the support stand is configured to support the filament spool holder body. In an embodiment of the present application, the filament spool holder may further comprise:

5 FIG. 9 10 9 10 In a possible implementation, as shown in, the bottom of a filament spool holder bodyof a filament spool holder may be fixedly connected to a support stand, so as to support the filament spool holder bodyvia the support stand.

As an example, one end of the support stand is fixedly connected to the bottom of the filament spool holder body, and the other end of the support stand is fixed to a 3D printer.

The support stand can support the filament spool holder body to make it on the 3D printer. One end of the support stand may be fixedly connected to the bottom of the filament spool holder body, and the other end may be fixedly connected to the 3D printer. The other end of the support stand may be fixed to different positions of the 3D printer based on an actual situation. For example, the other end of the support stand may be fixed to the top of the 3D printer or to a side surface of the 3D printer. This is not limited in the embodiments of the present application.

6 FIG. 11 12 12 13 12 11 11 14 Illustratively, as shown in, two sides of a filament spool holder bodyare each provided with at least two filament cylinder rotating shafts, and two filament cylinder rotating shaftson the same side are arranged in a vertically staggered manner with one higher than the other; feeding/retracting apparatusesare each arranged between the two filament cylinder rotating shaftson the respective side and fixed to the filament spool holder body. The bottom of the filament spool holder bodyis connected to a support stand.

In some feasible implementations, for any one of the at least two feeding/retracting apparatuses, a feeding port of the feeding/retracting apparatus faces downward, and a retracting port of the feeding/retracting apparatus faces upward; or the feeding port of the feeding/retracting apparatus faces upward, and the retracting port of the feeding/retracting apparatus faces downward.

In one embodiment, to reduce the winding of the movement path of the filament, the orientations of the feeding port and the retracting port of the feeding/retracting apparatus may be designed based on the height of the printing head in the vertical direction and the height of the feeding/retracting apparatus in the vertical direction. The feeding port is connected to a filament on the 3D printing filament spool, and the retracting port is connected to the printing head.

7 a FIG. 7 b FIG. 19 20 20 21 22 23 24 24 25 26 For example, as shown in, when a printing headis higher than a feeding/retracting apparatus, the feeding port and the retracting port of the feeding/retracting apparatusmay be arranged as such: The feeding portfaces downward, and the retracting portfaces upward. Alternatively, as shown in, when a printing headis lower than a feeding/retracting apparatus, the feeding port and the retracting port of the feeding/retracting apparatusmay be arranged as such: The feeding portfaces upward, and the retracting portfaces downward.

a motor; a driving gear connected to the motor, where the motor is configured to drive the driving gear to rotate; a driven gear spaced apart from the driving gear, where the driving gear and the driven gear are configured to cooperate to clamp the filament supplied by the 3D printing filament spool; and a speed sensor configured to measure rotational speed information of the motor and movement information of the filament. In an implementation of the embodiments of the present application, the feeding/retracting apparatus may comprise:

8 FIG. 15 17 18 18 17 19 18 20 18 19 20 18 20 18 20 19 18 20 In some feasible implementations, as shown in, a feeding/retracting apparatusmay comprise a motorconfigured to drive a driving gearto rotate, and the driving gearmay be connected to a motor shaft of the motor. A driven gearmay be spaced apart from the driving gear, and the gap therebetween may be less than or equal to the diameter of a filament. The driving gearand the driven gearcan cooperate to clamp the filamentwithin the gap, and convey, during the rotation of the driving gear, the filamentto the printing head or retract the filament to the 3D printing filament spool based on a frictional force between the driving gearand the filamentand a pressure applied by the driven gearand the driving gearto the filament.

20 15 21 15 21 17 20 To detect the slippage of the filamentduring filament feeding and retracting of the feeding/retracting apparatus, a speed sensormay be additionally provided in the feeding/retracting apparatus, and the speed sensorcan be configured to measure rotational speed information of the motorand movement information of the filament. In the embodiments of the present application, theoretical movement information of the filament may be determined based on the rotational speed information of the motor, and whether filament slippage occurs is automatically detected by comparing the theoretical movement information of the filament with actually collected movement information of the filament.

a gear reduction system connected to a motor shaft of the motor, where an output gear of the gear reduction system meshes with the driving gear. In some feasible implementations, the feeding/retracting apparatus of the filament spool holder may further comprise:

9 FIG. 22 24 23 23 24 22 24 In the embodiments of the present application, to prevent the motor from applying an excessive torque to the driving gear, which results in an excessively high filament feeding and retracting speed, the gear reduction system may be arranged between the motor and the driving gear. Specifically, as shown in, a motor shaft of a motormay be connected to a driving gearvia a gear reduction system, and an output gear of the gear reduction systemmay mesh with the driving gear. In this way, the torque actually applied by the motorto the driving gearis a torque after control. By implementing the embodiments of the present application, the speed of filament feeding and retracting can be controlled.

a motor-side Hall speed sensor configured to measure the rotational speed information of the motor, where the motor is provided with a magnet that rotates with the motor; and a filament-side Hall speed sensor configured to measure rotational speed information of the driven gear, where the driven gear is provided with a magnet that rotates with the driven gear. In some feasible implementations, the speed sensor may comprise:

The motor-side Hall speed sensor may be arranged for the motor, and the motor-side Hall speed sensor may obtain the rotational speed information of the motor by measuring a rotational speed of the magnet that is arranged on the motor and rotates with the motor. The filament-side Hall speed sensor arranged for the filament may obtain the rotational speed information of the driven gear by measuring a rotational speed of the magnet that is arranged on the driven gear and rotates with the driven gear.

Since the movement information of the filament is directly proportional to the rotational speed information of the driven gear, after the rotational speed information of the driven gear is obtained, the movement information of the filament can be determined based on the rotational speed information.

10 FIG. 25 26 27 a control componentconnected to a motorand a speed sensor. In some embodiments, as shown in, the filament spool holder may further comprise:

25 26 27 26 The control componentis configured to receive rotational speed information of the motorand movement information of the filament that are sent by the speed sensor, and to send control information to the motor.

The control component may be a control component for the feeding/retracting apparatus, or may be a control component arranged for the filament spool holder. This is not limited in the embodiments of the present application.

The control component may be connected to the motor and the speed sensor. When the control component is connected to the speed sensor, the rotational speed information of the motor and the movement information of the filament can be obtained from the speed sensor, and whether filament slippage occurs can be detected based on the rotational speed information and the movement information. Certainly, the control component may alternatively send the rotational speed information and the movement information to another control unit to identify and detect whether filament slippage occurs. This is not limited in the embodiments of the present application. Specifically, detecting whether filament slippage occurs based on the rotational speed information and the movement information comprises: A rotational speed of the driving gear is determined based on the rotational speed information, a rotational speed of the driven gear is determined based on the movement information, and when the rotational speed of the driving gear is greater than the rotational speed of the driven gear, it is determined that slippage occurs.

When determining that filament slippage occurs, the control component may send the control information to the motor to stop the motor from running; or when determining that no filament slippage occurs, the control component may control the motor to keep running in accordance with a previous control parameter. This is not limited in the embodiments of the present application.

In a feasible implementation, if whether filament slippage occurs is identified and detected by other control units, the control component may send, after receiving information indicating filament slippage, control information to the motor to stop the motor from running.

In another aspect, the embodiments of the present application further provide a 3D printer. The 3D printer may comprise any one of the filament spool holders described above, and a filament spool holder body of the filament spool holder may be fixedly connected to a frame of the 3D printer, and provide a filament to the 3D printer.

11 FIG. a filament spool holder body; at least two filament cylinder rotating shafts connected to the filament spool holder body, where each of the filament cylinder rotating shafts is configured to hold one 3D printing filament spool; and a drive assembly, where the drive assembly is configured to drive a first filament cylinder rotating shaft of the at least two filament cylinder rotating shafts to rotate, so as to enable the first filament cylinder rotating shaft to drive the 3D printing filament spool held on the first filament cylinder rotating shaft to rotate. Referring to, the embodiments of the present application further provide another filament spool holder for a 3D printer. The filament spool holder comprises:

During a specific implementation, the first filament cylinder rotating shaft may be any one of the at least two filament cylinder rotating shafts.

Specifically, the drive assembly can drive the first filament cylinder rotating shaft to rotate, thereby driving the 3D printing filament spool connected to the first filament cylinder rotating shaft to rotate, such that a filament in the 3D printing filament spool can be conveyed to the 3D printer along with the rotation, or a filament can be retracted to the 3D printing filament spool on the corresponding first filament cylinder rotating shaft.

To ensure that the filament in the 3D printing filament spool can be stably moved from the 3D printing filament spool to a printing head of the 3D printer, or stably retracted to the 3D printing filament spool, the embodiments of the present application provide a filament spool holder comprising a drive assembly. The drive assembly is arranged on the filament spool holder and configured to drive the first filament cylinder rotating shaft to rotate forward or reverse, so as to assist the filament feeding and retracting of a feeding/retracting apparatus of the 3D printer.

This can effectively avoid the problem that the printing head has no filament to use due to an insufficient extrusion force of an extrusion structure, or the problem that the filament cannot be properly retracted to the 3D printing filament spool, thereby improving the efficiency and stability of filament feeding and retracting of the 3D printer.

501 In a feasible implementation, the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a first direction, so as to retract a filament to the 3D printing filament spool on the first filament cylinder rotating shaft.

501 501 During a specific implementation, the first directionmay be any direction, provided that the filament can be retracted to the 3D printing filament spool on the first filament cylinder rotating shaft when the drive assembly drives the first filament cylinder rotating shaft to rotate in the first direction.

501 Specifically, after the filament in the 3D printing filament spool is cut off, the first filament cylinder rotating shaft may be driven by the drive assembly to rotate in the first direction, thereby enabling the filament in the 3D printing filament spool to be retracted to the 3D printing filament spool, so as to realize the retraction of the filament in the 3D printing filament spool.

210 210 501 210 502 210 501 502 In a feasible implementation, the drive assembly comprises a motorand a ratchet structure that is in transmission connection to the motor. The ratchet structure meshes with a first gear, and the first gear is in transmission connection to the first filament cylinder rotating shaft. When the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in the first direction, the motoris in transmission connection to the first filament cylinder rotating shaft, and when the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in a second direction, the motoris in transmission disconnection from the first filament cylinder rotating shaft. The first directionis opposite to the second direction.

210 Specifically, the motorcomprises at least two rotation modes. The at least two rotation modes comprise a first rotation mode and a second rotation mode, and the first rotation mode and the second rotation mode may enable the filament to be conveyed to the 3D printer or retracted from the 3D printer during filament feeding and filament retracting, respectively.

210 210 It can be understood that the first rotation mode and the second rotation mode refer to two rotation modes in opposite directions. In the two rotation modes in opposite directions, when one corresponds to a filament retracting operation, the other corresponds to a filament feeding operation. In other words, the correspondence of the first rotation mode and the second rotation mode to the filament feeding and filament retracting is not unique, and may be determined based on arrangements in an actual situation. For example, assume that the first rotation mode is a forward rotation of the motor, and the second rotation mode is a reverse rotation of the motor. If the forward rotation is to convey a filament to the 3D printer, the reverse rotation is to retract the filament to the 3D printing filament spool. On the contrary, if the forward rotation is to retract the filament to the 3D printing filament spool, the reverse rotation is to convey the filament to the 3D printer.

210 501 In a specific implementation, the motormay drive the first filament cylinder rotating shaft to rotate in the first directionin the first rotation mode (or the second rotation mode), thereby driving the 3D printing filament spool to retract the filament to the 3D printing filament spool, so as to realize filament retraction.

210 210 210 210 Specifically, the ratchet structure is mounted on an output shaft or a transmission shaft of the motor, and meshes with the first gear on the first filament cylinder rotating shaft. In one case, assume that the motoris in the first rotation mode, a pawl of the ratchet structure can drive a ratchet to rotate, such that a gear of the ratchet structure can drive the first gear to rotate, and the first gear drives the first filament cylinder rotating shaft to rotate through the transmission of the first filament cylinder rotating shaft. In addition, after the filament in the 3D printing filament spool on the first filament cylinder rotating shaft is conveyed to the extrusion structure, the motoris controlled to stop working. In this case, the filament can be pulled by the extrusion structure to continue the feeding, thereby avoiding the problem of desynchronization between the motor of the ratchet and a filament guide apparatus or a motor of the extrusion structure. If the motorrotates in the second rotation mode, due to the one-way clutch characteristic of the pawl, the ratchet cannot be driven to rotate once the frictional force of the ratchet increases to a certain degree, such that the ratchet loses driving force and stops rotating. However, during stages where the frictional force of the ratchet is small, the ratchet can still rotate and retract the filament to a position above the extrusion structure. Furthermore, in the case that the retraction distance is short, it is even possible to retract the filament to the 3D printing filament spool on the first filament cylinder rotating shaft. It can be seen that in this embodiment, through the ratchet structure, the filament cylinder rotating shaft is driven during filament feeding as, so as to convey the filament to the extrusion structure of the 3D printer, and then the 3D printing filament spool can rotate with a tractive force of the filament guide apparatus or the extrusion structure to slowly feed the filament and rely on the frictional force of the ratchet to retract the filament during filament retracting.

It can be understood that in another case, the pawl of the ratchet structure is arranged in an opposite orientation, such that the first filament cylinder rotating shaft may lose driving force in the first rotation mode, and be driven to rotate in the second rotation mode.

210 210 Alternatively, the ratchet structure is mounted on an output shaft or a transmission shaft of the motor, and meshes with the first gear on the first filament cylinder rotating shaft. The pawl of the ratchet structure can drive the ratchet to rotate, such that the gear of the ratchet structure can drive the first gear to rotate, and the first gear drives the first filament cylinder rotating shaft to rotate through the transmission of the first filament cylinder rotating shaft. If the motorrotates in the second rotation mode, due to the one-way clutch characteristic of the pawl, the ratchet cannot be driven to rotate. As a result, the ratchet loses driving force and stops rotating, thereby finally causing the first filament cylinder rotating shaft to lose driving force for rotation. In this case, the 3D printing filament spool may convey the filament to the 3D printer with a tractive force provided by the filament guide apparatus or the extrusion structure. It can be understood that in another case, the pawl of the ratchet structure is arranged in an opposite orientation, such that the first filament cylinder rotating shaft may lose driving force in the first rotation mode, and be driven to rotate in the second rotation mode. It can be seen that in this embodiment, through the ratchet structure, the first filament cylinder rotating shaft is driven during filament retracting, so as to drive the 3D printing filament spool to retract the filament to the 3D printing filament spool, thereby realizing filament retraction, and the first filament cylinder rotating shaft is not driven during filament feeding, such that the 3D printing filament spool can rotate with the tractive force of the filament guide apparatus or the extrusion structure to slowly extrude the filament. This enhances the efficiency of filament retracting and ensures the effect of filament feeding.

502 501 502 In a feasible implementation, the drive assembly is configured to drive the first filament cylinder rotating shaft to rotate in the second direction, so as to convey the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer, and the first directionis opposite to the second direction.

210 502 In a specific implementation, the motorof the drive assembly may drive the first filament cylinder rotating shaft to rotate in the second directionin the second rotation mode (or the first rotation mode).

210 310 310 210 In a feasible implementation, the drive assembly comprises a motorand a clutch assembly, and the clutch assemblyis configured for transmission connection or transmission disconnection between the motorand the first filament cylinder rotating shaft.

210 310 310 210 502 502 210 501 In a specific implementation, the drive assembly may comprise a motorand a clutch assembly. Through the clutch assembly, the motordrives the first filament cylinder rotating shaft to rotate in the second directionduring filament feeding, and finally the 3D printing filament spool is driven to rotate in the second direction, so as to convey the filament from the 3D printing filament spool to the 3D printer, thereby realizing filament feeding. When filament feeding needs to be switched to filament retracting, the motorchanges the rotation direction and rotates in a fourth direction that is opposite to a third direction, such that the clutch assembly is in transmission disconnection from the first filament cylinder rotating shaft, and finally is in transmission connection to the first filament cylinder rotating shaft in another manner. As a result, the clutch assembly drives the first filament cylinder rotating shaft to rotate in the first direction, and finally the 3D printing filament spool is driven to rotate, so as to retract the filament to the 3D printing filament spool, thereby realizing filament retraction.

310 312 311 313 312 311 210 210 313 312 311 312 311 312 313 311 In some feasible embodiments, the clutch assemblycomprises a connector, a first connecting gear, and a second connecting gear. The connectorand the first connecting gearare mounted on an output shaft of the motoror a transmission shaft that is in transmission connection to the motor, and the second connecting gearis rotatably connected to the connectorand meshes with the first connecting gear. The connectorabuts against the first connecting gear, so as to enable the connectorand the second connecting gearto rotate in a circumferential direction of the transmission shaft or the output shaft as the first connecting gearrotates.

311 210 210 311 Specifically, the first connecting gearis mounted on the output shaft of the motoror the transmission shaft that is in transmission connection to the motor, and is connected to the transmission shaft through shape complementarity. That is, the first connecting gearmay be provided with a non-circular through hole, and the transmission shaft may be provided with a mating segment with a shape complementary to the non-circular through hole.

311 311 311 210 311 The transmission shaft may be mounted on the mating segment, such that the first connecting gearcan remain stationary relative to the transmission shaft. Alternatively, the first connecting gearmay be provided with a circular through hole, and a engaging structure may be provided in the circular through hole, while the transmission shaft may be provided with a engaging groove with a shape complementary to the engaging structure, such that the first connecting gear is connected to the transmission shaft by mating, and the first connecting gearcan remain stationary relative to the transmission shaft. When the transmission shaft is driven by the motorto rotate, the first connecting gearcan rotate with the transmission shaft.

312 311 311 313 313 312 311 311 313 Further, the connectorcomprises a first assembly and a second assembly. The first assembly comprises a first end mounted on the transmission shaft and a second end opposite to the first end, and the second assembly comprises a third end mounted on the transmission shaft and a fourth end opposite to the first end. The first end and the third end may abut against two sides of the first connecting gearin a direction of an axis of rotation of the first connecting gear, respectively. The second end and the fourth end may abut against two sides of the second connecting gearin a direction of an axis of rotation of the second connecting gear, respectively. The connectormay be made of metal, plastic, or another commonly used material. The first end may be provided with a first through hole, the third end may be provided with a second through hole, and the transmission shaft may sequentially pass through the first through hole, the circular through hole of the first connecting gear, and the second through hole. The second end may be provided with a third through hole, the fourth end may be provided with a fourth through hole, the second connecting gear may be provided with a fifth through hole, and then a first connecting shaft sequentially passes through the third through hole, the fifth through hole, and the fourth through hole. The first end and the third end may be an integrally connected structure, a first gap exists between the first end and the third end, and the width of the first gap is less than or equal to the width of the first connecting gearin the direction of the axis of rotation. Alternatively, the second end and the fourth end may be an integrally connected structure, a second gap exists between the second end and the fourth end, and the width of the second gap is less than or equal to the width of the second connecting gearin the direction of the axis of rotation.

313 313 313 311 313 311 313 311 311 312 313 311 311 313 312 312 313 312 313 311 312 313 In a possible instance, the second end of the first assembly is provided with a second connecting shaft integrated with the first assembly, and the second connecting shaft sequentially passes through the fifth through hole of the second connecting gear and a sixth through hole at the fourth end of the second assembly, such that the second connecting gearis rotatably connected to the second connecting shaft. In an example, the second end of the first assembly is integrally provided with a rotating shaft, and the rotating shaft passes through the second connecting gear, such that the second connecting gearis rotatably connected to the first assembly. In this case, the first assembly and the second assembly are clamped on two sides of the axes of rotation of the first connecting gearand the second connecting gearvia an additionally provided clamping structure, such that the first assembly and the second assembly clamp the first connecting gearand the second connecting gear. In other words, although the first end of the first assembly and the third end of the second assembly are mounted on the transmission shaft, the three are not directly fixed to each other. The first assembly may remain fixed relative to the second assembly with a pressure generated by abutting against the first connecting gear, and the pressure causes frictional forces between the first and second assemblies and the first connecting gear. The frictional forces enable the connectorformed by the first and second assemblies, and the second connecting gear, to pivot in a circumferential direction of the transmission shaft as the transmission shaft and the first connecting gearrotate. That is, the first connecting gear, the second connecting gear, and the connectormay rotate as a whole with the transmission shaft. In addition, when an external force exists, the external force may be used to overcome the frictional force between the connectorand the second connecting gear, such that the connectorand the second connecting gearcan rotate as a whole relative to the first connecting gear. That is, the connectorand the second connecting gearcan pivot relative to the transmission shaft in the circumferential direction thereof.

311 312 312 311 312 311 In addition, to enable the first connecting gearto abut against the connector, the transmission shaft may be further provided with two shaft shoulders, and the diameter of each of the shaft shoulders may be greater than the diameter of the transmission shaft. The two shaft shoulders may be located on two sides of the clutch assembly in an axial direction of the transmission shaft, respectively. The connectormay abut against one of the shaft shoulders, and the first connecting gearmay abut against the other shaft shoulder. The connectorcan abut against the first connecting gearby appropriately adjusting the size between the two shaft shoulders.

210 313 1 2 2 3 210 313 3 2 2 1 2 1 3 2 1 3 In a feasible implementation, the motorrotates in a third direction to drive the second connecting gearto rotate from a first positionto a second position, or to rotate from a second positionto a third position; the motorrotates in a fourth direction to drive the second connecting gearto rotate from the third positionto the second position, or to rotate from the second positionto the first position. The third direction is opposite to the fourth direction, and the second positionis located between the first positionand the third position. Specifically, on a rotation path of the second connecting gear, the second positionis located between the first positionand the third position.

313 1 313 401 401 401 601 601 401 When the second connecting gearis located at the first position, the second connecting gearmeshes with one side of a first gear, and the first gearis in transmission connection to the first filament cylinder rotating shaft. Specifically, the first gearmay be provided with a seventh through hole, and then mounted on the shaft body of the first filament cylinder rotating shaft through the seventh through hole, so as to enable the first gearto drive the first filament cylinder rotating shaft to rotate.

210 502 313 3 313 401 210 501 The motorrotates in the fourth direction to drive the first filament cylinder rotating shaft to rotate in the second direction, so as to convey the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer. When the second connecting gearand is located at the third position, the second connecting gearmeshes with the other side of the first gear, and the motorrotates in the third direction to drive the first filament cylinder rotating shaft to rotate in the first direction, so as to retract the filament to the 3D printing filament spool on the first filament cylinder rotating shaft.

313 2 210 When the second connecting gearis located at the second position, the motoris in transmission disconnection from the first filament cylinder rotating shaft.

210 313 2 313 401 210 After the filament in the 3D printing filament spool on the first filament cylinder rotating shaft is conveyed to the extrusion structure of the 3D printer, the motoris controlled to rotate the second connecting gearto the second position, so as to cut off the transmission between the second connecting gearand the first gear, thereby avoiding the problem of desynchronization between the motorand the motor of the extrusion structure. The desynchronization between the two motors causes filament stretching or loosening.

313 401 401 401 401 313 313 311 313 401 501 In a specific implementation, to enable the second connecting gearto drive the first filament cylinder rotating shaft to rotate, one first gearmay be mounted on the shaft body of the first filament cylinder rotating shaft, or the first gearmay drive the first filament cylinder rotating shaft through a frictional force, or a gear structure is arranged on the first filament cylinder rotating shaft. The gear structure may mesh with the first gear. How the first gear drives the first filament cylinder rotating shaft is not limited in the present application. Through the connection between the first gearand the second connecting gearby engagement, when the second connecting gearis driven by the first connecting gearto rotate, the second connecting gearcan drive the first gearto rotate, thereby driving the first filament cylinder rotating shaft to rotate in the first direction.

2 310 210 3 310 210 1 310 210 In an example, the second positionis a position of the clutch assemblywhen the motorstops working, the third positionis a position of the clutch assemblywhen the motorrotates in the third direction, and the first positionis a position of the clutch assemblywhen the motorrotates in the fourth direction.

210 312 311 313 313 401 3 401 313 210 401 312 312 311 311 312 311 312 311 313 311 313 312 313 401 501 Specifically, the motordrives the transmission shaft to rotate in the third direction, thereby driving the connector, the first connecting gear, and the second connecting gearto rotate as a whole relative to the filament spool holder body, such that the second connecting gearcan swing to a position where it can mesh with the first gearof the first filament cylinder rotating shaft. That is, the clutch assembly is at the third position. Since the first gearmeshes with the second connecting gear, when the motorcontinues to drive the transmission shaft to rotate in the third direction, the first gearprovides resistance and hinders the connectorfrom rotating in the circumferential direction of the transmission shaft. The resistance can overcome the frictional force between the connectorand the first connecting gear, such that the first connecting gearand the connectorcan rotate relative to each other. That is, the first connecting gearcan continue to rotate with the transmission shaft, while the connectorcan remain stationary relative to the filament spool holder body. Since the first connecting gearmeshes with the second connecting gear, the first connecting gearcan rotate with the transmission shaft to drive the second connecting gearto rotate relative to the connector, while the second connecting gearcan drive the first gearto rotate, thereby driving the first filament cylinder rotating shaft to rotate. Finally, the first filament cylinder rotating shaft drives the 3D printing filament spool to rotate in the first direction, so as to retract the filament to the 3D printing filament spool.

210 210 311 310 313 401 3 2 1 When the 3D printer needs to be fed, the motoris controlled to drive the transmission shaft to rotate in the fourth direction that is opposite to the third direction. In this case, the transmission shaft of the motordrives the first connecting gearto rotate in the fourth direction, such that the whole clutch assemblyrotates in the fourth direction, and the second connecting gearis first in transmission disconnection from the first gear, and then gradually moves from the third position, via the second position, to the first position.

313 1 313 401 401 313 502 401 502 502 1 2 210 When the second connecting gearreaches the first position, the second connecting gearmeshes with the other side of the first gear, such that the first gearis driven, by the second connecting gear, to rotate in the second direction, thereby driving the first filament cylinder rotating shaft that is in transmission connection to the first gearto rotate in the second direction, and finally driving the 3D printing filament spool mounted on the first filament cylinder rotating shaft to rotate in the second direction, so as to convey the filament from the 3D printing filament spool to the printing head of the 3D printer. The structure is simple in this solution; the clutch assembly can move between the first positionand the second positionwith only one motor, which can reduce the cost.

210 210 In some feasible implementations, the situation may be that the motoris controlled to drive the transmission shaft to rotate in the third direction, so as to convey the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer; the motoris controlled to drive the transmission shaft to rotate in the fourth direction, so as to retract the filament to the 3D printing filament spool on the first filament cylinder rotating shaft. The rotation direction of the transmission shaft, that is, the relationship between the rotation direction of the first filament cylinder rotating shaft and filament feeding and retracting, is not limited in the present application.

In a feasible implementation, at least two filament guide apparatuses are provided, and the at least two filament guide apparatuses are fixed to the filament spool holder body. Each of the filament guide apparatuses comprises an extrusion mechanism and is configured to convey the filament in the 3D printing filament spool on the corresponding filament cylinder rotating shaft to the 3D printer or retract the filament to the 3D printing filament spool on the corresponding filament cylinder rotating shaft.

In a specific implementation, the filament spool may comprise at least two filament guide apparatuses. Specifically, the at least two filament cylinder rotating shafts are in one-to-one correspondence with the at least two filament guide apparatuses. That is, one filament guide apparatus corresponds to one filament cylinder rotating shaft, and one filament guide apparatus is threaded by a filament in a 3D printing filament spool held on a filament cylinder rotating shaft corresponding to the filament guide apparatus.

210 210 Each of the filament guide apparatuses comprises an extrusion mechanism, and the extrusion mechanism may be provided with a motor, a gear set, etc. The motordrives the gear set to rotate, and a filament between the gear set moves, under the rotation of the gear set, toward a printing head or the 3D printing filament spool, so as to complete the filament feeding or retracting. Compared with completing the filament feeding and retracting only by the extrusion structure in the printing head, in the embodiments of the present application, the filament guide apparatus arranged on the filament spool holder is further used, such that the filament feeding and retracting can be more stable.

502 501 501 Further, through the cooperation between the filament guide apparatus and the drive assembly, the efficiency and stability of filament feeding and retracting can be improved. For example, during filament feeding, the drive assembly drives the first filament cylinder rotating shaft to rotate in the second direction, so as to convey the filament to the filament guide apparatus. In this case, the motor of the drive assembly may stop working, and then the extrusion mechanism in the filament guide apparatus may drive the filament to be conveyed to the printing head of the 3D printer. Finally, the printing head melts the filament, and the printing material in a molten state is extruded onto a build plate from a nozzle of the printing head. When an extrusion structure in the printing head drives the filament, the extrusion mechanism in the filament guide apparatus stops working. During filament retracting, the drive assembly drives the first filament cylinder rotating shaft to rotate in the first direction, so as to rewind the filament onto the 3D printing filament spool. At the same time, the extrusion mechanism in the filament guide apparatus extrudes the filament in the first directionand cooperates with the drive assembly to realize filament retraction.

In a feasible implementation, the outer wall of the first filament cylinder rotating shaft abuts against the inner wall of a through hole on the 3D printing filament spool in a circumferential direction, and the first filament cylinder rotating shaft is able to drive the 3D printing filament spool to rotate through a frictional force.

In a specific implementation, the 3D printing filament spool comprises a through hole, and the 3D printing filament spool is mounted on the first filament cylinder rotating shaft through the through hole, such that the outer wall of the first filament cylinder rotating shaft abuts against the through hole of the 3D printing filament spool. When the first filament cylinder rotating shaft rotates, the 3D printing filament spool is driven to rotate through a frictional force.

Illustratively, the through hole may be open at one end and closed at the other end, or may be open at both ends.

It can be seen that in this embodiment, through the abutment between the outer wall of the first filament cylinder rotating shaft and the inner wall of the hole of the 3D printing filament spool, the first filament cylinder rotating shaft can drive the 3D printing filament spool to rotate.

12 FIG. a filament spool holder body; at least two filament cylinder rotating shafts connected to the filament spool holder body, where each of the filament cylinder rotating shafts is configured to hold one 3D printing filament spool; and at least two filament guide apparatuses fixed to the filament spool holder body, where each of the filament guide apparatuses comprises an extrusion mechanism, and is configured to convey a filament in a 3D printing filament spool on a corresponding filament cylinder rotating shaft to the 3D printer, or to retract the filament to the 3D printing filament spool on the corresponding filament cylinder rotating shaft. Referring to, the embodiments of the present application further provide a filament spool holder for a 3D printer. The filament spool holder comprises:

In a specific implementation, the filament spool may comprise at least two filament guide apparatuses. Specifically, the at least two filament cylinder rotating shafts are in one-to-one correspondence with the at least two filament guide apparatuses. That is, one filament guide apparatus corresponds to one filament cylinder rotating shaft, and one filament guide apparatus is threaded by a filament in a 3D printing filament spool held on a filament cylinder rotating shaft corresponding to the filament guide apparatus.

220 220 Each of the filament guide apparatuses comprises an extrusion mechanism, and the extrusion mechanism may be provided with a motor, a gear set, etc. The motordrives the gear set to rotate, and a filament between the gear set moves, under the rotation of the gear set, toward a printing head or the 3D printing filament spool, so as to complete the filament feeding or retracting. Compared with completing the filament feeding and retracting only by the extrusion structure in the printing head, in the embodiments of the present application, the filament guide apparatus arranged on the filament spool holder is further used, such that the filament feeding and retracting can be more stable.

501 In a feasible implementation, the extrusion mechanism comprises a drive mechanism, an active extrusion wheel, and a driven extrusion wheel. The active extrusion wheel and the driven extrusion wheel are configured to clamp the filament, and the drive mechanism is configured to drive the active extrusion wheel to rotate in a first direction, so as to retract the filament to the 3D printing filament spool on the filament cylinder rotating shaft.

In a specific implementation, in some feasible implementations, the active extrusion wheel may be connected to the drive mechanism, and the drive mechanism provides driving force for the active extrusion wheel, so as to enable the active extrusion wheel to rotate. The driven extrusion wheel may be spaced apart from the active extrusion wheel, and the gap therebetween may be less than or equal to the diameter of the filament. The active extrusion wheel and the driven extrusion wheel may cooperate to clamp the filament within the gap, and convey, during the rotation of the active extrusion wheel, the filament to the printing head or retract the filament to the 3D printing filament spool based on a frictional force between the active extrusion wheel and the filament and a pressure applied by the driven extrusion wheel and the active extrusion wheel to the filament.

220 220 To detect the slippage of filament during filament feeding and retracting of the feeding/retracting apparatus, a speed sensor may be additionally provided in the extrusion mechanism, and the speed sensor can be configured to measure rotational speed information of the motorand movement information of the filament. In the embodiments of the present application, theoretical movement information of the filament may be determined based on the rotational speed information of the motor, and whether filament slippage occurs is automatically detected by comparing the theoretical movement information of the filament with actually collected movement information of the filament.

501 Illustratively, the drive mechanism may alternatively drive the active extrusion wheel to rotate in a first direction, and under the action of a frictional force between the active extrusion wheel and the driven extrusion wheel, the filament can be extruded from the gap between the active extrusion wheel and the driven extrusion wheel to the 3D printing filament spool, thereby retracting the filament to the 3D printing filament spool.

502 501 502 In a feasible implementation, the drive mechanism is configured to drive the active extrusion wheel to rotate in a second direction, so as to convey the filament in the 3D printing filament spool on the filament cylinder rotating shaft to the 3D printer, and the first directionis opposite to the second direction.

502 502 In a specific implementation, the active extrusion wheel is driven, by the drive mechanism, to rotate in the second direction, and the driven extrusion wheel, due to the frictional force between the active extrusion wheel and the driven extrusion wheel, starts to rotate in the second directionunder the drive of the active extrusion wheel, such that the filament is extruded from the gap between the active extrusion wheel and the driven extrusion wheel, thereby conveying the filament to the printing head or retracting the filament to the 3D printing filament spool.

220 320 320 220 In some possible embodiments, the drive mechanism comprises a motorand a clutch assembly, and the clutch assemblyis configured for transmission connection or transmission disconnection between the motorand the active extrusion wheel.

220 320 320 220 502 502 220 501 In a specific implementation, the drive assembly may comprise a motorand a clutch assembly. Through the clutch assembly, the motordrives the active extrusion wheel to rotate in the second directionduring filament feeding, and finally the 3D printing filament spool is driven to rotate in the second direction, so as to convey the filament from the 3D printing filament spool to the 3D printer, thereby realizing filament feeding. When filament feeding needs to be switched to filament retracting, the motorchanges the rotation direction and rotates in a fourth direction that is opposite to a third direction, such that the clutch assembly is in transmission disconnection from the active extrusion wheel, and finally is in transmission connection to the active extrusion wheel in another manner. As a result, the clutch assembly drives the active extrusion wheel to rotate in the first direction, and finally the 3D printing filament spool is driven to rotate, so as to retract the filament to the 3D printing filament spool, thereby realizing filament retraction.

320 322 321 323 322 321 220 220 323 322 321 322 321 322 323 321 In a feasible implementation, the clutch assemblycomprises a connector, a first connecting gear, and a second connecting gear. The connectorand the first connecting gearare mounted on an output shaft of the motoror a transmission shaft that is in transmission connection to the motor, and the second connecting gearis rotatably connected to the connectorand meshes with the first connecting gear. The connectorabuts against the first connecting gear, so as to enable the connectorand the second connecting gearto rotate in a circumferential direction of the transmission shaft or the output shaft as the first connecting gearrotates.

321 220 220 321 Specifically, the first connecting gearis mounted on the output shaft of the motoror the transmission shaft that is in transmission connection to the motor, and is connected to the transmission shaft through shape complementarity. That is, the first connecting gearmay be provided with a non-circular through hole, and the transmission shaft may be provided with a mating segment with a shape complementary to the non-circular through hole.

321 321 321 220 321 The transmission shaft may be mounted on the mating segment, such that the first connecting gearcan remain stationary relative to the transmission shaft. Alternatively, the first connecting gearmay be provided with a circular through hole, and a engaging structure may be provided in the circular through hole, while the transmission shaft may be provided with a engaging groove with a shape complementary to the engaging structure, such that the first connecting gear is connected to the transmission shaft by mating, and the first connecting gearcan remain stationary relative to the transmission shaft. When the transmission shaft is driven by the motorto rotate, the first connecting gearcan rotate with the transmission shaft.

322 321 321 323 323 322 321 321 323 Further, the connectorcomprises a first assembly and a second assembly. The first assembly comprises a first end mounted on the transmission shaft and a second end opposite to the first end, and the second assembly comprises a third end mounted on the transmission shaft and a fourth end opposite to the first end. The first end and the third end may abut against two sides of the first connecting gearin a direction of an axis of rotation of the first connecting gear, respectively. The second end and the fourth end may abut against two sides of the second connecting gearin a direction of an axis of rotation of the second connecting gear, respectively. The connectormay be made of metal, plastic, or another commonly used material. The first end may be provided with a first through hole, the third end may be provided with a second through hole, and the transmission shaft may sequentially pass through the first through hole, the circular through hole of the first connecting gear, and the second through hole. The second end may be provided with a third through hole, the fourth end may be provided with a fourth through hole, the second connecting gear may be provided with a fifth through hole, and then a first connecting shaft sequentially passes through the third through hole, the fifth through hole, and the fourth through hole. The first end and the third end may be an integrally connected structure, a first gap exists between the first end and the third end, and the width of the first gap is less than or equal to the width of the first connecting gearin the direction of the axis of rotation. Alternatively, the second end and the fourth end may be an integrally connected structure, a second gap exists between the second end and the fourth end, and the width of the second gap is less than or equal to the width of the second connecting gearin the direction of the axis of rotation.

323 323 323 321 323 321 323 321 321 322 323 321 321 323 322 322 323 322 323 321 322 323 In a possible instance, the second end of the first assembly is provided with a second connecting shaft integrated with the first assembly, and the second connecting shaft sequentially passes through the fifth through hole of the second connecting gear and a sixth through hole at the fourth end of the second assembly, such that the second connecting gearis rotatably connected to the second connecting shaft. In an example, the second end of the first assembly is integrally provided with a rotating shaft, and the rotating shaft passes through the second connecting gear, such that the second connecting gearis rotatably connected to the first assembly. In this case, the first assembly and the second assembly are clamped on two sides of the axes of rotation of the first connecting gearand the second connecting gearvia an additional clamping structure, such that the first assembly and the second assembly clamp the first connecting gearand the second connecting gear. In other words, although the first end of the first assembly and the third end of the second assembly are mounted on the transmission shaft, the three are not directly fixed to each other. The first assembly may remain fixed relative to the second assembly with a pressure generated by abutting against the first connecting gear, and the pressure causes frictional forces between the first and second assemblies and the first connecting gear. The frictional forces enable the connectorformed by the first and second assemblies, and the second connecting gear, to pivot in a circumferential direction of the transmission shaft as the transmission shaft and the first connecting gearrotate. That is, the first connecting gear, the second connecting gear, and the connectormay rotate as a whole with the transmission shaft. In addition, when an external force exists, the external force may be used to overcome the frictional force between the connectorand the second connecting gear, such that the connectorand the second connecting gearcan rotate as a whole relative to the first connecting gear. That is, the connectorand the second connecting gearcan pivot relative to the transmission shaft in the circumferential direction thereof.

321 322 322 321 322 321 In addition, to enable the first connecting gearto abut against the connector, the transmission shaft may be further provided with two shaft shoulders, and the diameter of each of the shaft shoulders may be greater than the diameter of the transmission shaft. The two shaft shoulders may be located on two sides of the clutch assembly in an axial direction of the transmission shaft, respectively. The connectormay abut against one of the shaft shoulders, and the first connecting gearmay abut against the other shaft shoulder. The connectorcan abut against the first connecting gearby appropriately adjusting the size between the two shaft shoulders.

220 323 1 2 2 3 220 323 3 2 2 1 2 1 3 In a feasible implementation, the motorrotates in a third direction to drive the second connecting gearto rotate from a first positionto a second position, or to rotate from a second positionto a third position; the motorrotates in a fourth direction to drive the second connecting gearto rotate from the third positionto the second position, or to rotate from the second positionto the first position. The third direction is opposite to the fourth direction, and the second positionis located between the first positionand the third position.

323 1 323 402 402 402 602 602 402 220 502 When the second connecting gearis located at the first position, the second connecting gearmeshes with one side of a second gear, and the second gearis in transmission connection to the active extrusion wheel. Specifically, the second gearmay be provided with an eighth through hole, and then mounted on the active extrusion wheel through the eighth through hole, or mounted on a rotating shaft of the active extrusion wheel. In other words, the second gearis the active extrusion wheel. The motorrotates in the fourth direction to drive the active extrusion wheel to rotate in the second direction, so as to convey the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer.

323 3 323 402 220 501 When the second connecting gearis located at the third position, the second connecting gearmeshes with the other side of the second gear, and the motorrotates in the third direction to drive the active extrusion wheel to rotate in the first direction, so as to retract the filament to the 3D printing filament spool on the first filament cylinder rotating shaft.

323 2 220 When the second connecting gearis located at the second position, the motoris in transmission disconnection from the active extrusion wheel.

2 After the filament in the 3D printing filament spool on the first filament cylinder rotating shaft is conveyed to the extrusion structure of the 3D printer, the motor is controlled to rotate the second connecting gear to the second position, so as to cut off the transmission between the second connecting gear and the active extrusion wheel, thereby avoiding the problem of desynchronization between the motor and the motor of the extrusion structure. The desynchronization between the two motors causes filament stretching or loosening.

323 402 323 In a specific implementation, to enable the second connecting gearto drive the active extrusion wheel to rotate, a second gearmay be mounted on the body of the active extrusion wheel, or the second connecting gearmay directly mesh with the active extrusion wheel.

402 323 323 321 323 402 Through the connection between the second gearand the second connecting gearby engagement, when the second connecting gearis driven by the first connecting gearto rotate, the second connecting gearcan drive the second gearto rotate, thereby driving the active extrusion wheel to rotate.

2 320 220 3 320 220 1 320 220 In an example, the second positionis a position of the clutch assemblywhen the motorstops working, the third positionis a position of the clutch assemblywhen the motorrotates in the third direction, and the first positionis a position of the clutch assemblywhen the motorrotates in the fourth direction.

220 322 321 323 323 402 3 402 323 220 402 322 Specifically, the motordrives the transmission shaft to rotate in the third direction, thereby driving the connector, the first connecting gear, and the second connecting gearto rotate as a whole relative to the filament spool holder body, such that the second connecting gearcan swing to a position where it can mesh with the second gearof the active extrusion wheel. That is, the clutch assembly is at the third position. Since the second gearmeshes with the second connecting gear, when the motorcontinues to drive the transmission shaft to rotate in the third direction, the second gearprovides resistance and hinders the connectorfrom rotating in the circumferential direction of the transmission shaft.

322 321 321 322 321 322 321 323 321 323 322 323 402 The resistance can overcome the frictional force between the connectorand the first connecting gear, such that the first connecting gearand the connectorcan rotate relative to each other. That is, the first connecting gearcan continue to rotate with the transmission shaft, while the connectorcan remain stationary relative to the filament spool holder body. Since the first connecting gearmeshes with the second connecting gear, the first connecting gearcan rotate with the transmission shaft to drive the second connecting gearto rotate relative to the connector, while the second connecting gearcan drive the second gearto rotate, thereby driving the active extrusion wheel to rotate.

Finally, the active extrusion wheel, under the action of frictional force, drives the driven wheel to rotate, so as to retract the filament in the gap between the active extrusion wheel and the driven extrusion wheel to the 3D printing filament spool.

220 220 321 320 323 3 2 1 323 1 323 402 402 323 502 402 502 502 When the 3D printer needs to be fed, the motoris controlled to drive the transmission shaft to rotate in the fourth direction that is opposite to the third direction. The transmission shaft of the motordrives the first connecting gearto rotate in the fourth direction, such that the whole clutch assemblyrotates in the fourth direction, and the second connecting gearis first in transmission disconnection from the second gear, and then gradually moves from the third position, via the second position, to the first position. When the second connecting gearreaches the first position, the second connecting gearmeshes with the other side of the second gear, such that the second gearis driven, by the second connecting gear, to rotate in the second direction, thereby driving the active extrusion wheel that is in transmission connection to the second gearto rotate in the second direction, so as to lead the filament out of the 3D printing filament spool and convey the filament to the printing head of the 3D printer. Additionally, a tractive force is generated to drive the 3D printing filament spool mounted on the first filament cylinder rotating shaft to rotate in the second direction, thereby realizing filament feeding operation.

1 2 220 The structure is simple in this solution; the clutch assembly can move between the first positionand the second positionwith only one motor, which can reduce the cost.

210 210 In some feasible implementations, the situation may be that the motoris controlled to drive the active extrusion wheel to rotate in the third direction, so as to convey the filament in the 3D printing filament spool on the first filament cylinder rotating shaft to the 3D printer; the motoris controlled to drive the active extrusion wheel to rotate in the fourth direction, so as to retract the filament to the 3D printing filament spool on the first filament cylinder rotating shaft. The rotation direction of the active extrusion wheel, that is, the relationship between the rotation direction of the first filament cylinder rotating shaft and filament feeding and retracting, is not limited in the present application.

11 FIG. It can be understood that for a specific structure of the clutch assembly, reference may be made to the description of. Details are not described herein again.

It should be noted that the terms “first” and “second” are merely for descriptive purposes and are not to be construed as indicating or implying relative importance.

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Patent Metadata

Filing Date

February 25, 2026

Publication Date

July 2, 2026

Inventors

Zezheng ZHANG
Zewen LI
Weijie YUAN

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Cite as: Patentable. “FILAMENT SPOOL HOLDER FOR 3D PRINTER, 3D PRINTER, AND 3D PRINTING SYSTEM” (US-20260184018-A1). https://patentable.app/patents/US-20260184018-A1

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FILAMENT SPOOL HOLDER FOR 3D PRINTER, 3D PRINTER, AND 3D PRINTING SYSTEM — Zezheng ZHANG | Patentable